Method and apparatus for enabling data communication between an implantable medical device and a patient management system
Summary by NHIP
Agile transceiver medical data relay
The apparatus stores an implantable medical device serial number in memory to authenticate the device before retrieving its clinical data. It then transmits that data to a host computer via a communications device like a wireless telephone or pager.
Claim Score by NHIP
Abstract
Embodiments of the invention provide methods, systems, and devices for enabling data communication between an IMD and a host computer. In one embodiment, a device is provided that comprises a frequency and protocol agile transceiver capable of communicating with an IMD via a short range communications link and with a host computer via a long range wireless communications link. The transceiver may be utilized by the device to retrieve clinical data stored in the IMD and to transmit the clinical data directly to the host computer via the long range wireless communications link. An apparatus is provided according to another embodiment of the invention that comprises an interface between an IMD and a communications device, such as a wireless telephone or a two-way wireless pager. The interface can communicate directly with the IMD to retrieve clinical data stored in the IMD and can utilize the communications device to transmit the clinical data to a host computer.

Term
Term ended
Expired 5 July 2023, 3.2 years ago.
- Priority and filed
- Granted
- Expired
- Today
14 claims: 2 independent, 12 dependent
- 1An apparatus for enabling data communication between an implantable medical device and a host computer, comprising:a central processing unit;a memory;and a transceiver capable of communicating with the implantable medical device via a short range wireless communications link;an input and output interface capable of interfacing with a communications device and establishing a communication link with the host computer via the communications device;and a program capable of executing on the central processing unit operative to: store a serial number corresponding to the implantable medical device in the memory, transmit the serial number to the implantable medical device as a part of an authentication procedure, receive clinical data stored in the implantable medical device via the short range wireless communications link, determine whether clinical data is stored in the memory, in response to determining that clinical data is stored in the memory, establish the communications link with the host computer via the communications device, and transmit the clinical data to the host computer.
- 11Broadest claimClaim Score 58, broad(NHIP)A method for enabling data communication between an implantable medical device and a host computer, comprising:configuring a transceiver for wireless communication with the implantable medical device using a short range wireless communications link;storing a serial number corresponding to the implantable medical device in a memory of the transceiver;transmitting the serial number to the implantable medical device as part of an authentication procedure;receiving clinical data from the implantable medical device via the transceiver;determining whether clinical data is stored in the memory of the transceiver;in response to determining that clinical data is stored in the memory, configuring the transceiver for communication with the host computer using a long range wireless communications link;and transmitting the clinical data to the host computer via the long range wireless communications link.
Independent claims2
131 paragraphs in 5 sections, as filed
TECHNICAL FIELD
0001This application relates generally to patient management systems, and particularly, but not by way of limitation, to an interface device for coupling an implantable medical device to a host computer utilized in a patient management system.
BACKGROUND OF THE INVENTION
0002Management of patients with chronic disease consumes a significant proportion of the total health care expenditure in the United States. Many of these diseases are widely prevalent and have significant annual incidences as well. Heart Failure prevalence alone is estimated at over 5.5 million patients in 2000 with incidence rates of over half a million additional patients annually, resulting in a total health care burden in excess of $20 billion. Heart Failure, like many other chronic diseases such as Asthma, Chronic Obstructive Pulmonary Disease (“COPD”), Chronic Pain, and Epilepsy is event driven, where acute de-compensations result in hospitalization. In addition to causing considerable physical and emotional trauma to the patient and family, event driven hospitalizations consume a majority of the total health care expenditure allocated to the treatment of heart failure.
0003An interesting fact about the treatment of acute de-compensation is that hospitalization and treatment occurs after the event (de-compensation) has happened. However, most Heart Failure patients exhibit prior non-traumatic symptoms, such as steady weight gain, in the weeks or days prior to the de-compensation. If the attending physician is made aware of these symptoms, it is possible to intervene before the event, at substantially less cost to the patient and the health care system. Intervention is usually in the form of a re-titration of the patient's drug cocktail, reinforcement of the patient's compliance with the prescribed drug regimen, or acute changes to the patient's diet and exercise regimens. Such intervention is usually effective in preventing the de-compensation episode and thus avoiding hospitalization.
0004In order to provide early detection of symptoms that may signal an increased likelihood of a traumatic medical event, patients may receive implantable medical devices (“IMDs”) that have the ability to measure various body characteristics. For instance, IMDs are currently available that provide direct measurement of electrical cardiac activity, physical motion, temperature, and other clinical parameters. The data collected by these devices is typically retrieved from the device through interrogation.
0005Some IMDs communicate with a repeater located in the patient's home via a short range wireless communications link. The repeater interrogates the IMD and retrieves the clinical data stored within the IMD. The repeater then establishes a connection with a host computer or patient management system and transmits the clinical data.
0006While the use of a repeater is convenient for a patient while located near the repeater, no data can be transmitted from the IMD to the repeater if the IMD is out of range. Therefore, if the patient is away from home, no data can be communicated to the host computer system via the repeater. This can be extremely inconvenient, and even dangerous, for the patient if a medically significant event occurs while the IMD is out of range of the repeater.
0007Therefore, in light of the above, there is a need for a method and apparatus for enabling data communication between an IMD and a host computer that enables communication between the IMD and the host computer in a manner that does not require proximity to a fixed repeater device. There is a further need for a method and apparatus for enabling data communication between an IMD and a host computer that utilizes a portable communications device for directly communicating with the host computer.
SUMMARY OF THE INVENTION
0008Embodiments of the present invention solve the above-described problems by providing a method and apparatus for enabling communication between an IMD and a host computer that do not require the use of a fixed location repeater device. Embodiments of the present invention also solve the above-described problems by enabling communication between an IMD and a host computer in a manner that utilizes a portable wireless communications device that can establish a data connection with the host computer directly through a long range wireless communications link.
0009According to one actual embodiment of the present invention, an apparatus is provided for enabling communication between an IMD and a host computer operated as a part of a patient management system. The apparatus comprises a frequency and protocol agile transceiver capable of configuring itself for communication with the IMD via a short range wireless communications link and for communication with a host computer via a long range wireless communications link, such as through the wireless telephone network.
0010The apparatus provided according to one embodiment of the invention also comprises a central processing unit (“CPU”), a memory, and a program capable of configuring the transceiver for communication with the IMD, communicating with the IMD to retrieve clinically significant data stored in the IMD, and of storing the clinical data in the memory. The program is also capable of reconfiguring the transceiver for data communication with the host computer via the long range wireless communications link. Once the transceiver has been configured for communication with the host computer via the long range wireless communications link, the program transmits the clinical data stored in memory to the host computer.
0011According to another actual embodiment of the present invention, an apparatus is provided that comprises an interface between an IMD and a communications device, such as a wireless telephone or a two-way wireless pager. In particular, the apparatus comprises a transceiver capable of communicating with an IMD via a short range wireless communications link and an input/output interface for communicating with the communications device. Through the transceiver the apparatus can communicate with the IMD and retrieve clinical data stored within the IMD. The apparatus is also operative to establish a communications link with a host computer through the communications device. Once such a communications link has been established, the apparatus can transmit the clinical data to the host computer.
0012Embodiments of the present invention also include methods and systems for enabling communication between an IMD and a patient management system. These and various other features as well as advantages, which characterize the present invention, will be apparent from a reading of the following detailed description and a review of the associated drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
0013In the drawings, which are not necessarily drawn to scale, like numerals describe substantially similar components throughout the several views. Like numerals having different letter suffixes represent different instances of substantially similar components. The drawings illustrate generally, by way of example, but not by way of limitation, various embodiments discussed in the present document.
0014<figref idref="DRAWINGS">FIGS. 1A and 1B</figref> are block diagrams showing the operation of several embodiments of the present invention in an illustrative operating environment;
0015<figref idref="DRAWINGS">FIG. 2</figref> is a block diagram illustrating an advanced patient management system utilized in one embodiment of the present invention;
0016<figref idref="DRAWINGS">FIG. 3</figref> is a block diagram illustrating a computer system utilized in various embodiments of the present invention;
0017<figref idref="DRAWINGS">FIG. 4A</figref> is a block diagram illustrating an example interrogator/transceiver unit provided by one embodiment of the present invention;
0018<figref idref="DRAWINGS">FIG. 4B</figref> is a block diagram showing a communication system utilized in one embodiment of the present invention;
0019<figref idref="DRAWINGS">FIG. 5</figref> is a block diagram showing a hardware architecture for an apparatus for enabling data communication between an IMD and a host computer provided according to one actual embodiment of the present invention;
0020<figref idref="DRAWINGS">FIG. 6</figref> is a state diagram illustrating a method for enabling data communication between an IMD and a host computer provided in one embodiment of the present invention;
0021<figref idref="DRAWINGS">FIG. 7</figref> is a block diagram showing a hardware architecture for an interface between an IMD and a communications device provided in one embodiment of the present invention; and
0022<figref idref="DRAWINGS">FIG. 8</figref> is a state diagram illustrating aspects of a method for enabling communication between an IMD and a host computer provided according to one embodiment of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
0023In the following detailed description, reference is made to the accompanying drawings which form a part hereof, and in which is shown by way of illustration specific embodiments or examples. These embodiments may be combined, other embodiments may be utilized, and structural, logical, and electrical changes may be made without departing from the spirit and scope of the present invention. The following detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined by the appended claims and their equivalents.
0024The apparatus and methods described herein are described in the context of a patient management system that provides patient management and device management. As used herein, the phrase “patient management” refers to the process of creating and collecting patient specific information, storing and collating the information, and generating actionable recommendations to enable the predictive management of patients with chronic disease. As used herein, the phrase “device management’ refers to the process of leveraging a remote communications infrastructure to provide automatic device follow-ups to collect data, provide therapy, and to determine if remote devices are functioning properly. It should be appreciated that although the embodiments of the invention are described in the context of a patient management system, the embodiments of the invention may be utilized within other operating environments. Additional details regarding the patient management system that provides one operating environment for the embodiments of the invention are provided below with respect to <figref idref="DRAWINGS">FIGS. 2–4B</figref>. Additional details regarding the apparatus provided herein are provided below with respect to <figref idref="DRAWINGS">FIGS. 1A–1B</figref> and <b>5</b>–<b>8</b>.
0025Turning now to <figref idref="DRAWINGS">FIG. 1A</figref>, one embodiment of the present invention will be described in the context of an illustrative operating environment. As shown in <figref idref="DRAWINGS">FIG. 1A</figref>, an interface device <b>99</b> is provided for enabling communication between an IMD <b>100</b> and a host computer <b>200</b>. According to this embodiment, the interface device <b>99</b> is capable of communicating with the host computer <b>200</b> through a wireless telephone network <b>108</b>. In particular, the interface device <b>99</b> is capable of establishing a long range communications link <b>104</b> with a wireless network <b>108</b> through a wireless tower <b>106</b>. The data connection is established through a mobile telephone switching office (“MTSO”) <b>110</b>. A network gateway <b>112</b> may also be utilized within the wireless telephone network <b>108</b> to enable communication with a wide area network <b>114</b> (“WAN”). In the actual embodiment of the present invention described herein, the WAN <b>114</b> comprises the Internet. However, other types of WANs known to those skilled in the art may be utilized. In this manner, the interface device <b>99</b> can establish a digital data connection with host computer <b>200</b> through the wireless telephone network <b>108</b> in the same way that a traditional cellular telephone would establish such a connection.
0026As shown in <figref idref="DRAWINGS">FIG. 1A</figref>, the IMD <b>100</b> may be implanted within a patient <b>102</b>. The IMD <b>100</b> has the ability to sense and communicate and may include the ability to provide therapy. In particular, the IMD <b>100</b> includes a sensor that allows it to directly measure characteristics of the patient's body. This may include monitoring electrical cardiac activity, physical motion, temperature, heart rate, activity, blood pressure, breathing patterns, wedge-pressure, ejection fractions, blood viscosity, blood chemistry, blood glucose levels, or other patient specific clinical parameters without any patient compliance. The measured clinical data may be stored in a memory of the IMD <b>100</b>. The IMD <b>100</b> also includes a wireless transmitter/receiver unit capable of communicating with the interface device <b>99</b> via a short range wireless communications link <b>103</b>, such as BLUETOOTH, IEEE 802.11b, or other type of short range wireless communications link.
0027Through the interface device <b>99</b>, clinical data stored within the IMD <b>100</b> can be transmitted to the host computer <b>200</b>. Status information regarding operation of the IMD <b>100</b> may also be sent and software or firmware updates and configuration changes may be received from the host computer <b>200</b>. As will be described in greater detail below with respect to <figref idref="DRAWINGS">FIGS. 2–4B</figref>, the host computer <b>200</b> performs a variety of functions within a patient management system in addition to communicating with the IMD <b>100</b>.
0028According to the embodiment of the present invention shown in <figref idref="DRAWINGS">FIG. 1A</figref>, the interface device <b>99</b> comprises a wireless digital telephone modified for communication with the IMD <b>100</b> and for performing other functions described herein. However, it should be appreciated by those skilled in the art that other types of wireless communication devices may be modified in a similar manner and utilized for communication with the IMD <b>100</b> and the host computer <b>200</b>. For instance, a two-way wireless pager may be similarly modified to communicate with the IMD <b>100</b> and to communicate with the host computer <b>200</b>. Other types of wireless devices may be modified and utilized similarly to facilitate communicating over a variety of pervasive wireless communication network types. Additional details regarding the hardware architecture and operation of the interface device <b>99</b> according to this embodiment of the invention will be described below with reference to <figref idref="DRAWINGS">FIGS. 5 and 6</figref>, respectively.
0029Referring now to <figref idref="DRAWINGS">FIG. 1B</figref>, another embodiment of the present invention will be described. As shown in <figref idref="DRAWINGS">FIG. 1B</figref>, this embodiment of the invention provides an interface device <b>105</b> that is capable of communicating with the IMD <b>100</b> via a short range communications link <b>103</b>. As described above, the short range communications link <b>103</b> may comprise a BLUETOOTH, IEEE 802.11b, or other type of short range wireless connection. The interface device <b>105</b> is also capable of communicating with the host computer <b>200</b> via a communications device <b>107</b> and a long range communications link <b>104</b>.
0030In the embodiment of the present invention shown in <figref idref="DRAWINGS">FIG. 1B</figref>, the communications device <b>107</b> comprises a conventional digital wireless telephone. According to this embodiment, communication is established between the interface device <b>105</b> and the host computer <b>200</b> via the communications device <b>107</b>, the wireless tower <b>106</b>, the MTSO <b>110</b>, the gateway <b>112</b>, and the WAN <b>114</b>. However, it should be appreciated by those skilled in the art that other types of wireless communications devices and other types of communication networks may also be utilized, such as a wireless two-way paging network and the like. Additional details regarding the hardware configuration and operation of the interface device <b>105</b> will be provided below with reference to <figref idref="DRAWINGS">FIGS. 7 and 8</figref>, respectively.
0031<figref idref="DRAWINGS">FIG. 2</figref> illustrates an example advanced patient management system <b>200</b> made in accordance with the present invention. The advanced patient management system <b>200</b> can generally include the following components: one or more devices <b>202</b>, <b>204</b>, and <b>206</b>, one or more interrogator/transceiver units <b>208</b>, a communications system <b>210</b>, one or more remote peripheral devices <b>209</b>, and a host <b>212</b>.
0032Each component of the advanced patient management system <b>200</b> can communicate using the communications system <b>210</b>. Some components may also communicate directly with one another. For example, devices <b>202</b> and <b>204</b> may be configured to communicate directly with one another. The various components of the example advanced patient management system <b>200</b> illustrated herein are described below.
0033Devices <b>202</b>, <b>204</b>, and <b>206</b> can be implantable devices or external devices that may provide one or more of the following functions with respect to a patient: (1) sensing, (2) data analysis, and (3) therapy. For example, in one embodiment, devices <b>202</b>, <b>204</b>, and <b>206</b> can be implanted or external devices used to measure a variety of physiological, subjective, and environmental conditions of a patient using electrical, mechanical, and/or chemical means. The devices <b>202</b>, <b>204</b>, and <b>206</b> can be configured to automatically gather data or can require manual intervention by the patient. The devices <b>202</b>, <b>204</b>, and <b>206</b> can be configured to store data related to the physiological and/or subjective measurements and/or transmit the data to the communications system <b>210</b> using a variety of methods, described in detail below. Although three devices <b>202</b>, <b>204</b>, and <b>206</b> are illustrated in the example embodiment shown, more or fewer devices may be used for a given patient.
0034The devices <b>202</b>, <b>204</b>, and <b>206</b> can be configured to analyze the measured data and act upon the analyzed data. For example, the devices <b>202</b>, <b>204</b>, and <b>206</b> may be configured to modify therapy or provide alarm indications based on the analysis of the data.
0035In one embodiment, devices <b>202</b>, <b>204</b>, and <b>206</b> may also provide therapy. Therapy can be provided automatically or in response to an external communication. Devices <b>202</b>, <b>204</b>, and <b>206</b> can be programmable in that the characteristics of their sensing (e.g., duration and interval), therapy, or communication can be altered via communication between the devices <b>202</b>, <b>204</b>, and <b>206</b> and other components of the advanced patient management system <b>200</b>. Devices <b>202</b>, <b>204</b>, and <b>206</b> can also perform self-checks or be interrogated by the communications system <b>210</b> to verify that the devices are functioning properly. Examples of different embodiments of the devices <b>202</b>, <b>204</b>, and <b>206</b> are provided below.
0036Devices implanted within the body have the ability to sense and communicate as well as to provide therapy. Implantable devices can provide direct measurement of characteristics of the body, including, without limitation, electrical cardiac activity (e.g., a pacemaker, cardiac resynchronization management device, defibrillator, etc.), physical motion, temperature, heart rate, activity, blood pressure, breathing patterns, ejection fractions, blood viscosity, blood chemistry, blood glucose levels, and other patient-specific clinical physiological parameters, while minimizing the need for patient compliance.
0037A heart rhythm sensor, typically found in a pacemaker or defibrillator, is one example of implantable device. In the heart, an electrical wave activates the heart muscle just prior to contraction. As is known in the art, electrical circuits and lead-wires transduce the heart's activation event and reject other, non-essential electrical events. By measuring the time interval between activation events, the heart rhythm can be determined. A transthoracic impedance sensor is another example of an implantable device. During the respiratory cycle, large volumes of air pass into and out of the body. The electrical resistance of the thorax changes markedly as a result of large differences in conductivity of air and body tissues. The thoracic resistance can be measured during respiration and converted into a measurable electrical signal (i.e., impedance) so that breathing rate and profile can be approximated. Implantable devices can also sense chemical conditions, such as glucose levels, blood oxygen levels, etc. Further, the advanced patient management system <b>200</b> may utilize other implantable devices as well that provide physiological measurements of the patient, such as drug pumps, neurological devices (e.g., stimulators), oxygen sensors, etc.
0038Derived measurements can also be determined from the implantable devices. For example, a sleep sensor can rely on measurements taken by an implanted accelerometer that measures body activity levels. The sleep sensor can estimate sleeping patterns based on the measured activity levels. Other derived measurements can include a functional capacity indicator, autonomic tone indicator, sleep quality indicator, cough indicator, anxiety indicator, and cardiovascular wellness indicator for calculating a quality of life indicator for quantifying a patient's overall health and well-being.
0039Devices <b>202</b>, <b>204</b>, and <b>206</b> can also be external devices, or devices that are not implanted in the human body, that may be used to measure physiological data. Such devices may include a multitude of devices to measure data relating to the human body, including temperature (e.g., a thermometer), blood pressure (e.g., a sphygmomanometer), blood characteristics (e.g., glucose levels), body weight, physical strength, mental acuity, diet, heart characteristics, and relative geographic position (e.g., a Global Positioning System (“GPS”)).
0040Devices <b>202</b>, <b>204</b>, and <b>206</b> can also be environmental sensors. The devices can be placed in a variety of geographic locations (in close proximity to patient or distributed throughout a population) and can record non-patient specific characteristics such as, for example, temperature, air quality, humidity, carbon monoxide level, oxygen level, barometric pressure, light intensity, and sound.
0041One or more of the devices <b>202</b>, <b>204</b>, and <b>206</b> (for example, device <b>206</b>) may be external devices that measure subjective or perceptive data from the patient. Subjective data is information related to a patient's feelings, perceptions, and/or opinions, as opposed to objective physiological data. For example, the “subjective” devices can measure patient responses to inquiries such as “How do you feel?” and “How is your pain?” and “Does this taste good?”. The device can prompt the patient and record subjective data from the patient using visual and/or audible cues. For example, the patient can press coded response buttons or type an appropriate response on a keypad. Alternatively, subjective data may be collected by allowing the patient to speak into a microphone and using speech recognition software to process the subjective data.
0042In one example embodiment, the subjective device presents the patient with a relatively small number of responses to each question posed to the patient. For example, the responses available to the patient may include three faces representing feelings of happiness, nominalness, and sadness. Averaged over time, a trend of a patient's well being may emerge with a finer resolution than the quanta of the three responses.
0043The subjective data can be collected from the patient at set times, or, alternatively, can be collected whenever the patient feels like providing subjective data. The subjective data can also be collected substantially contemporaneously with physiological data to provide greater insight into overall patient wellness.
0044The device <b>206</b> can be any device that accepts input from a patient or other concerned individual and/or provides information in a format that is recognizable to the patient. Device <b>206</b> can typically include a keypad, mouse, display, handheld device, interactive TV, a cellular telephone or other radio frequency (“RF”) communications device, cordless phone, corded phone, speaker, microphone, email message, and physical stimulus such as an electric shock or change in temperature or light intensity.
0045In one example embodiment, the device <b>206</b> includes or is part of a computer system <b>300</b>, as illustrated in <figref idref="DRAWINGS">FIG. 3</figref>. The computer system <b>300</b> can include a central processor unit <b>312</b> and a system memory <b>314</b>. The computer system <b>300</b> further includes one or more drives <b>323</b> for reading data from and writing data to, as well as an input device <b>344</b> such as a keyboard or mouse and a monitor <b>352</b> or other type of display device.
0046A number of program modules may be stored on the drive <b>323</b>, including an operating system <b>336</b>, one or more application programs <b>338</b>, other program modules <b>340</b>, and program data <b>342</b>. The computer system <b>300</b> may operate in a networked environment using logical connections to one or more remote computers or computer systems <b>356</b>. Computer system <b>300</b> may also comprise a hand-held computer such as a personal digital assistant (“PDA”) computer.
0047Referring now to <figref idref="DRAWINGS">FIG. 4A</figref>, the advanced patient management system <b>200</b> may include one or more interrogator/transceiver units (“ITUs”), such as ITU <b>208</b>. The ITU <b>208</b> includes an interrogator module <b>252</b> for receiving data from a device such as devices <b>202</b>, <b>204</b>, and <b>206</b>, a memory module <b>254</b> for storing data, a transceiver module <b>256</b> for sending data both to the devices <b>202</b>, <b>204</b>, and <b>206</b> as well as other components of the advanced patient management system <b>200</b>. The ITU <b>208</b> also includes a power module <b>258</b> that provides power.
0048The ITU <b>208</b> may perform one or more of the following functions: (1) data storage; (2) data analysis; (3) data forwarding; (4) patient interaction; and (5) patient feedback. For example, the ITU <b>208</b> may facilitate communications between the devices <b>202</b>, <b>204</b>, and <b>206</b> and the communications system <b>210</b>. The ITU <b>208</b> can, periodically or in real-time, interrogate and download into memory clinically relevant patient data from the devices <b>202</b>, <b>204</b>, and/or <b>206</b>. This data can include, in the cardiac sensor context, for example, P and R-Wave measurements, pacing, shocking events, lead impedances, pacing thresholds, battery voltage, capacitor charge times, ATR episodes with electrograms, tachycardia episodes with electrograms, histogram information, and any other clinical information necessary to ensure patient health and proper device function. The data may be sent to the ITU <b>208</b> by the devices <b>202</b>, <b>204</b>, and <b>206</b> in real-time or periodically uploaded out of buffers on the devices.
0049The ITU <b>208</b> may also allow for patient interaction. For example, the ITU <b>208</b> may include a patient interface and allow the patient to input subjective data. In addition, the ITU <b>208</b> may provide feedback to the patient based on the data that has been analyzed or based on information communicated by the communications system <b>210</b>.
0050In another embodiment, the ITU <b>208</b> can include a telemetry link from the implanted device to a network that forms the basis of a wireless LAN in the patient's home. The device can systematically download information from the devices <b>202</b>, <b>204</b>, and <b>206</b> while the patient is sleeping, for example. The data can be transmitted by landline or wirelessly to the communications system <b>210</b> or directly to the host <b>212</b>. In addition, in one embodiment the ITU <b>208</b> can function in a hybrid form, utilizing wireless communication when available and defaulting to landline communication when the wireless communication becomes unavailable.
0051Some devices, such as legacy implanted cardiac rhythm management (“CRM”) devices, communicate via an internal telemetry transceiver that communicates with an external programmer. The communication range of such devices is typically 4–12 inches. Communications system <b>210</b> may include a special purpose “ITU” that communicates with an implanted legacy device, on one hand, and communicates with the wireless Internet on the other. Patients with legacy devices are provided with these ITUs and are instructed to use them periodically (e.g., monthly).
0052The ITU <b>208</b> may be in the form of a small device that is placed in an inconspicuous place within the patient's residence. Alternatively, the ITU may be implemented as part of a commonly used appliance in the patient's residence. For example, the ITU may be integrated with an alarm clock that is positioned near the patient's bed. In another embodiment, the ITU may be implemented as part of the patient's personal computer system. Other embodiments are also possible.
0053In another embodiment, the ITU <b>208</b> may comprise a hand-held device such as a PDA, cellular telephone, or other similar device that is in wireless communication with the devices <b>202</b>, <b>204</b>, and <b>206</b>. The hand-held device may upload the data to the communications system <b>210</b> wirelessly. Alternatively, the hand-held device may periodically be placed in a cradle or other similar device that is configured to transmit the data to the communications system <b>210</b>.
0054The ITU <b>208</b> can also perform analysis on the data and provide immediate feedback, as well as perform a variety of self-diagnostic tests to verify that it is functioning properly and that communication with the communications system <b>210</b> has not be compromised. For example, the ITU <b>208</b> can perform a diagnostic loop-back test, which involves sending a request through the communications system <b>210</b> to the host <b>212</b>. The host <b>212</b> can then reply with a response back through the communications system <b>210</b> to the ITU <b>208</b>. If a specific duration elapses before the ITU <b>208</b> receives the response, or if the ITU <b>208</b> receives an unexpected response, the ITU <b>208</b> can provide indications that the system is not functioning properly. For example, if wireless communications between the ITU <b>208</b> and the communications system <b>210</b> have been interrupted, and the ITU <b>208</b> performs a self-diagnostic test that fails, the ITU <b>208</b> may alert data management service personnel so that corrective action may be taken. Alternatively, the ITU <b>208</b> can sound a visual and/or audible alarm to alert the patient that communication has been interrupted. In another embodiment, the ITU <b>208</b> can automatically fail-back to a landline system to communicate with the communications system <b>210</b>.
0055In other embodiments of the advanced patient management system <b>200</b>, the ITU <b>208</b> can be eliminated completely, and the devices <b>202</b>, <b>204</b>, and <b>206</b> can communicate directly with the communications system <b>210</b> and/or host <b>212</b>. For example, device <b>202</b> may include a miniature cellular phone capable of wirelessly uploading clinical data from the device on a periodic basis. This is particularly advantageous for devices that are mobile (e.g., an implanted device in a patient that is traveling). The device <b>202</b> can incorporate wireless telecommunications such as cellular, BLUETOOTH, or IEEE 802.11B to communicate with the communications system <b>210</b>.
0056To conserve the energy of the devices <b>202</b>, <b>204</b>, and <b>206</b>, particularly when the devices (e.g., device <b>202</b>) are configured to communicate directly with the communications system <b>210</b> without using an ITU, in one example embodiment the devices are configured to communicate during a given duty cycle. For example, the device <b>202</b> can be configured to communicate with the communications system <b>210</b> at given intervals, such as once a week. The device <b>202</b> can record data for the time period (e.g., a week) and transmit the data to the communications system <b>210</b> during the portion of the cycle that transmission is active and then conserve energy for the rest of the cycle. In another example, the device <b>202</b> conserves energy and only communicates with the communications system <b>210</b> when an “interesting” event, such as a heart arrhythmia, has occurred. In this manner, device <b>202</b> can communicate directly with the communications system <b>210</b> and/or host <b>212</b> without using the ITU <b>208</b>, while conserving the energy of the device by communicating only during a given duty cycle.
0057If multiple devices, such as devices <b>202</b>, <b>204</b>, and <b>206</b>, are provided for a given patient, each device may include its own means for communicating with the ITU <b>208</b> or communications system <b>210</b>. Alternatively, a single telemetry system may be implemented as part of one of the devices, or separate from the devices, and each device <b>202</b>, <b>204</b>, and <b>206</b> can use this single telemetry system to communication with the ITU <b>208</b> or the communications system <b>210</b>.
0058In yet another embodiment, the devices <b>202</b>, <b>204</b>, and <b>206</b> include wires or leads extending from devices <b>202</b>, <b>204</b>, and <b>206</b> to an area external of the patient to provide a direct physical connection. The external leads can be connected, for example, to the ITU <b>208</b> or a similar device to provide communications between the devices <b>202</b>, <b>204</b>, and <b>206</b> and the other components of the advanced patient management system <b>200</b>.
0059The advanced patient management system <b>200</b> can also involve a hybrid use of the ITU <b>208</b>. For example, the a device such as devices <b>202</b>, <b>204</b>, and <b>206</b> can intelligently communicate via short-range telemetry with the ITU when the patient is located within the patient's home and communicate directly with the communications system <b>210</b> or host <b>212</b> when the patient is traveling. This may be advantageous, for example, to conserve battery power when the devices are located near an ITU.
0060Communications system <b>210</b> provides for communications between and among the various components of the advanced patient management system <b>200</b>, such as the devices <b>202</b>, <b>204</b>, and <b>206</b>, host <b>212</b>, and remote peripheral devices <b>209</b>. <figref idref="DRAWINGS">FIG. 4B</figref> illustrates communications system <b>210</b> according one embodiment of the present invention. The communications system <b>210</b> includes a plurality of computer systems <b>304</b>, <b>306</b>, <b>308</b>, and <b>310</b>, as well as device <b>202</b>, host <b>212</b>, and remote peripheral device <b>109</b>, connect to one another by the communications network <b>300</b>. The communications network <b>300</b> may be, for example, a local area network (“LAN”), wide area network (WAN), or the Internet. Communications among the various components, as described more fully below, may be implemented using wired or wireless technologies.
0061In the example embodiment illustrated, the host <b>212</b> includes server computers <b>318</b> and <b>322</b> that communicate with computers <b>304</b>, <b>306</b>, <b>308</b>, and <b>310</b> using a variety of communications protocols, described more fully below. The server computers <b>318</b> and <b>322</b> may store information in databases <b>316</b> and <b>320</b>. This information may also be stored in a distributed manner across one or more additional servers.
0062As shown in <figref idref="DRAWINGS">FIG. 4B</figref>, a variety of communication methods and protocols may be used to facilitate communication between devices <b>202</b>, <b>204</b>, and <b>206</b>, ITU <b>208</b>, communications system <b>210</b>, host <b>212</b>, and remote peripheral device <b>109</b>. For example, wired and wireless communications may be used. Wired communication methods may include, for example and without limitation, traditional copper-line communications such as DSL, broadband technologies such as ISDN and cable modems, and fiber optics, while wireless communications may include cellular, satellite, radio frequency (“RF”), Infrared, etc.
0063For any given communication method, a multitude of standard and/or proprietary communication protocols may be used. For example and without limitation, wireless (e.g., radio frequency pulse coding, spread spectrum, direct sequence, time-hopping, frequency hopping, etc.) and other communication protocols (e.g., SMTP, FTP, TCP/IP) may be used. Other proprietary methods and protocols may also be used. Further, a combination of two or more of the communication methods and protocols may also be used.
0064The various communications between the components of the advanced patient management system <b>200</b> may be made securely using several different techniques. For example, encryption and/or tunneling techniques may be used to protect data transmissions. Alternatively, a priority data exchange format and interface that are kept confidential may also be used. Authentication can be implemented using, for example, digital signatures based on a known key structure (e.g., PGP or RSA). Other physical security and authentication measures may also be used, such as security cards and biometric security apparatuses (e.g., retina scans, iris scans, fingerprint scans, veinprint scans, voice, facial geometry recognition, etc.). Conventional security methods such as firewalls may be used to protect information residing on one or more of the storage media of the advanced patient management system <b>200</b>. Encryption, authentication and verification techniques may also be used to detect and correct data transmission errors.
0065Commumications among the various components of the advanced patient management system <b>200</b> may be enhanced using compression techniques to allow large amounts of data to be transmitted efficiently. For example, the devices <b>202</b>, <b>204</b>, and <b>206</b> may compress the information recorded from the patient prior to transmitting the information to the ITU <b>208</b> or directly to the communications system <b>210</b>. The communication methods and protocols can facilitate periodic and/or real-time delivery of data.
0066The host <b>212</b> may include a database module <b>214</b>, an analysis module <b>216</b>, and a delivery module <b>218</b> (shown in <figref idref="DRAWINGS">FIG. 2</figref>). The host <b>212</b> preferably includes enough processing power to analyze and process large amounts of data collected from each patient, as well as to process statistics and perform analysis for large populations. For example, the host <b>212</b> may include a mainframe computer or multi-processor workstation. The host <b>220</b> may also include one or more commercial personal computer systems containing sufficient computing power and memory. The host <b>220</b> may include storage medium (e.g. hard disks, optical data storage devices, etc.) sufficient to store the massive amounts of high-resolution data that are collected from the patients and analyzed.
0067The host <b>212</b> may also include identification and contact information (e.g., IP addresses and/or telephone numbers) for the various devices communicating with it, such as ITU <b>208</b> and peripheral device <b>209</b>. For example, each ITU <b>208</b> may be assigned a hard-coded or static identifier (e.g., IP address, telephone number, etc.), which would allow the host <b>212</b> to identify which patient's information the host <b>212</b> is receiving at a given instant. Alternatively, each device <b>202</b>, <b>204</b>, and <b>206</b> may be assigned a unique identification number, or a unique patient identification number may be transmitted with each transmission of patient data.
0068When a device is first activated, several methods may be used to associate data received by the advanced patient management system <b>200</b> with a given patient. For example, each device may include a unique identification number and a registration form that may be filled out by the patient, caregiver, or field representative. The registration form can be used to collect the necessary information to associate collected data with the patient. Alternatively, the user could logon to a web site to allow for the registration information to be collected. Another possible method involves including a barcode on each device that can be scanned prior to or in conjunction with initial measurements to provide information to associate the recorded data with the given patient.
0069Referring again to <figref idref="DRAWINGS">FIG. 2</figref>, the database module <b>214</b> can include a patient database <b>400</b>, a population database <b>402</b>, a medical database <b>404</b>, and a general database <b>406</b>, all described further below. The patient database <b>400</b> includes patient specific data, including data acquired by the devices <b>202</b>, <b>204</b>, and <b>206</b>. The patient database <b>400</b> can also include a patient's medical records. The patient database <b>400</b> can include historical information regarding the devices <b>202</b>, <b>204</b>, and <b>206</b>. For example, if device <b>202</b> is an ICD, the patient database <b>400</b> can record the following device information: P and R measurements, pacing frequency, pacing thresholds, shocking events, recharge time, lead impedance, battery voltage/remaining life, ATR episode and EGMs, histogram information, and other device information. The information stored in the database <b>400</b> can be recorded at various times depending on the patient requirements or device requirements. For example, the database <b>400</b> can be updated at periodic intervals that coincide with the patient downloading data from the device. Alternatively, data in the database <b>400</b> can be updated in real time. Typically, the sampling frequency will depend on the health condition being monitored and the co-morbidities.
0070The population database <b>402</b> includes non-patient specific data, such as data relating to other patients and population trends. The population database <b>402</b> also records epidemic-class device statistics and patient statistics. The population database <b>402</b> also includes data relating to staffing by health care providers, environmental data, pharmaceuticals, etc.
0071The medical database <b>404</b> includes clinical data relating to the treatment of diseases. For example, the medical database <b>404</b> can include historical trend data for multiple patients in the form of a record of progression of their disease(s) along with markers of key events.
0072The general database <b>406</b> includes non-medical data of interest to the patient. This can include information relating to news, finances, shopping, technology, entertainment, and sports. The general database <b>406</b> can be customized to provide general information of specific interest to the patient. For example, stock information can be presented along with the latest health information as detected from the devices <b>202</b>, <b>204</b>, and <b>206</b>.
0073In another embodiment, information may also be provided from an external source such as external database <b>558</b>. For example, the external database may include external medical records maintained by a third party, such as drug prescription records maintained by a pharmacy providing information related to what types of drugs have been prescribed for a patient. The analysis module <b>216</b> includes a patient analysis module <b>550</b>, device analysis module <b>552</b>, population analysis module <b>554</b>, and learning module <b>556</b>.
0074The patient analysis module <b>550</b> may utilize information collected by the advanced patient management system <b>200</b>, as well as information for other relevant sources, to analyze data related to a patient and provide timely and predictive assessments of the patient's well-being. In performing this analysis, the patient device module <b>550</b> may utilize data collected from a variety of sources, include patient specific physiological and subjective data collected by the advanced patient management system <b>200</b>, medical and historical records (e.g., lab test results, histories of illnesses, etc., drugs currently and previously administered, etc.), as well as information related to population trends provided from sources external to the advanced patient management system <b>200</b>.
0075For example, in one embodiment, the patient analysis module <b>550</b> may make a predictive diagnosis of an oncoming event based on information stored in the database module <b>214</b>. For example, the data continuously gathered from a device of a given patient at a heightened risk for a chronic disease event (such as de-compensations in heart failure) can be analyzed. Based on this analysis, therapy, typically device-based or pharmaceutical, can then be applied to the patient.
0076In another example embodiment, the patient analysis module <b>550</b> may provide a diagnosis of patient health status and predicted trend based on present and recent historical data collected from a device as interpreted by a system of expert knowledge derived from working practices within clinics. For example, the patient analysis module <b>550</b> may perform probabilistic calculations using currently collected information combined with regularly collected historical information to predict patient health degradation.
0077In another example embodiment, the patient analysis module <b>550</b> may conduct pre-evaluation of the incoming data stream combined with patient historical information and information from patients with similar disease states. The pre-evaluation system is based on data derived from working clinical practices and the records of outcomes. The derived data can be processed into a neural network or equivalent system to reflect the clinical practice. Further, the patient analysis module <b>550</b> may also provide means for periodic processing of present and historical data to yield a multidimensional health state indication along with disease trend prediction, next phase of disease progression co-morbidities, and inferences about what other possible diseases may be involved. The patient analysis module <b>550</b> may also integrate data collected from internal and external devices with subjective data to optimize management of overall patient health.
0078The device analysis module <b>552</b> analyzes data from the devices <b>202</b>, <b>204</b>, and <b>206</b> and ITU <b>208</b> to predict and determine device failures. For example, if an implanted device <b>202</b> fails to communicate at an expected time, device analysis module <b>552</b> determines the source of the failure and takes action to restore the performance of the device <b>202</b>.
0079The device analysis module <b>552</b> may also perform additional deterministic and probabilistic calculations. For example, the device analysis module <b>552</b> may gather data related to charge levels within a given device, such as an ICD, and provide analysis and alerting functions based on this information if, for example, the charge level reaches a point at which replacement of the device and/or battery is necessary. Similarly, early degradation or imminent failure of implanted devices can be identified and proactively addressed, or at-risk devices can be closely monitored.
0080The population analysis module <b>554</b> uses the data collected in the database module <b>214</b> to manage the health of a population. For example, a clinic managing cardiac patients can access the advanced patient management system <b>200</b> and thereby obtain device-supplied advance information to predict and optimize resource allocation both as to immediate care and as a predictive metric for future need of practicing specialists. As another example, the spread of disease in remote populations can be localized and quarantined rapidly before further spread.
0081In one embodiment, population analysis module <b>554</b> trends the patient population therapy and management as recorded by the devices and directs health care resources to best satisfy the needs of the population. The resources can include people, facilities, supplies, and/or pharmaceuticals. In other embodiments, the population analysis module. Can detect epidemics and other events that affect large population groups. The population analysis module <b>554</b> can issue alerts that can initiate a population quarantine, redirect resources to balance size of staffing with number of presenting population, and predict future need of qualified specialists.
0082The population analysis module <b>554</b> may utilize a variety of characteristics to identify like-situated patients, such as, for example, sex, age, genetic makeup, etc. The population analysis module <b>554</b> may develop large amounts of data related to a given population based on the information collected by the advanced patient management system <b>200</b>. In addition, the population analysis module <b>554</b> may integrate information from a variety of other sources. For example, the population analysis module <b>554</b> may utilized data from public domain databases (e.g. National Institute of Health), public and governmental and health agency databases, private insurance companies, medical societies (e.g. American Heart Association), and genomic records (e.g., DNA sequences).
0083In one embodiment of the invention, the host <b>212</b> may be used as a “data clearinghouse,” to gather and integrate data collected from the devices <b>202</b>, <b>204</b>, and <b>206</b>, as well as data from sources outside the advanced patient management system <b>200</b>. The integrated data can be shared with other interested entities, subject to privacy restrictions, thereby increasing the quality and integration of data available.
0084The learning module <b>556</b> analyzes the data provided from the various information sources, including the data collected by the advanced patient system <b>200</b> and external information sources. For example, the learning module <b>556</b> analyzes historical symptoms, diagnoses, and outcomes along with time development of the diseases and co-morbidities. The learning module <b>556</b> can be implemented via a neural network (or similar) system.
0085The learning module <b>556</b> can be partially trained (i.e., the learning module <b>556</b> may be implemented with a given set of preset values and then learn as the advanced patient management system functions) or untrained (i.e., the learning module <b>556</b> is initiated with no preset values and must learn from scratch as the advanced patient management system functions). In other alternative embodiments, the learning module <b>556</b> may continue to learn and adjust as the advanced patient management system functions (i.e., in real time), or the learning module <b>556</b> may remain at a given level of learning and only advanced to a higher level of understanding when manually allowed to do so.
0086The learning module <b>556</b> may implement various algorithms and mathematical modeling such as, for example, trend and statistical analysis, data mining, pattern recognition, cluster analysis, neural networks and fuzzy logic. Learning module <b>556</b> may perform deterministic and probabilistic calculations. Deterministic calculations include algorithms for which a clear correlation is known between the data analyzed and a given outcome. For example, there may be a clear correlation between the power left in a battery of an implantable device and the amount of time left before the battery must be replaced.
0087A probabilistic calculation involves the correlation between data and a given outcome that is less than 200 percent certain. Probabilistic determinations require an analysis of several possible outcomes and an assignment of probabilities for those outcomes (e.g., an increase in weight of a patient may, at a 25% probability, signal an impending de-compensation event and/or indicate that other tests are needed). The learning module <b>556</b> may perform probabilistic calculations and select a given response based on less than a 100% probability. Further, as the learning module <b>556</b> “learns” for previous determinations (e.g., through a neural network configuration), the learning module <b>556</b> may become more proficient at assigning probabilities for a given data pattern, thereby being able to more confidently select a given response. As the amount of data that has been analyzed by the learning module <b>556</b> grows, the learning module <b>556</b> may become more and more accurate at assigning probabilities based on data patterns. A bifurcated analysis may be performed for diseases exhibiting similar symptoms.
0088In addition, patient specific clinical information can be stored and tracked for hundreds of thousands of individual patients, enabling a first-level electronic clinical analysis of the patient's clinical status and an intelligent estimate of the patient's short-term clinical prognosis. The learning module <b>556</b> may be capable of tracking and forecasting a patient's clinical status with increasing levels of sophistication by measuring a number of interacting co-morbidities, all of which may serve individually or collectively to degrade the patient's health. This will enable learning module <b>556</b>, as well as caregivers, to formulate a predictive medical response to oncoming acute events in the treatment of patients with chronic diseases such as heart failure, diabetes, pain, cancer, and asthma/COPD, as well as possibly head-off acute catastrophic conditions such as MI and stroke.
0089In a neural network embodiment, new clinical information is presented to create new neural network coefficients that are distributed as a neural network knowledge upgrade. The learning module <b>556</b> can include a module for verifying the neural network conclusions for clinical accuracy and significance. The learning module <b>556</b> can analyze a database of test cases, appropriate outcomes and relative occurrence of misidentification of the proper outcomes. In some embodiments, the learning module <b>556</b> can update the analysis module <b>216</b> when the analysis algorithms exceed a threshold level of acceptable misidentifications.
0090The delivery module <b>218</b> coordinates the delivery of feedback based on the analysis performed by the host <b>212</b>. In response to the analysis module <b>216</b>, delivery module <b>218</b> can manage the devices <b>202</b>, <b>204</b>, and <b>206</b>, perform diagnostic data recovery, program the devices, and otherwise deliver information as needed.
0091In some embodiments, the delivery module <b>218</b> can manage a web interface that can be accessed by patients or caregivers. The information gathered by an implanted device can be periodically transmitted to a web site that is securely accessible to the caregiver and/or patient in a timely manner. In other embodiments a patient accesses detailed health information with diagnostic recommendations based upon analysis algorithms derived from leading health care institutions.
0092For example, the caregiver and/or patient can access the data and analysis performed on the data by accessing one or more general content providers. In one example, the patient's health information is accessed through a general portal such as MY YAHOO provided by YAHOO! INC. of Sunnyvale, Calif. A patient can access his or her MY YAHOO homepage and receive information regarding current health and trends derived from the information gathered from the devices <b>202</b>, <b>204</b>, and <b>206</b>, as well as other health information gathered from other sources. The patient may also access information other than health information on the MY YAHOO website, such as weather and stock market information. Other electronic delivery methods such as email, facsimile, etc. can also be used.
0093In an alternative embodiment, the data collected and integrated by the advanced patient system <b>200</b>, as well as any analysis performed by the system <b>200</b>, can be delivered by delivery module <b>218</b> to a caregiver's hospital computer system for access by the caregiver. A standard or custom interface can facilitate communications between the advanced patient management system <b>200</b> and a legacy hospital system used by the caregiver so that the caregiver can access all relevant information using a system familiar to the caregiver.
0094In addition, the advanced patient management system <b>200</b> can be configured so that various components of the system (e.g., ITU <b>208</b>, communications system <b>210</b>, and/or host <b>212</b>) provide reporting to various individuals (e.g., patient and/or caregiver). For example, different levels of reporting can be provided by (1) the ITU <b>208</b> and (2) the host <b>212</b>. For example, the ITU <b>208</b> may be configured to conduct rudimentary analysis of data gathered from devices <b>202</b>, <b>204</b>, and <b>206</b>, and provide reporting should an acute situation be identified. For example, if the ITU <b>208</b> detects that a significant heart arrhythmia is imminent or currently taking place, the ITU <b>208</b> can provide reporting in the form of an audible or visual alarm.
0095The host <b>212</b> can provide a more sophisticated reporting system. For example, the host <b>212</b> may provide exception-based reporting and alerts that categorize different reporting events based on importance. Some reporting events may not require caregiver intervention and therefore can be reported automatically. In other escalating situations, caregiver and/or emergency response personnel may need to become involved. For example, based on the data collected by the advanced patient management system <b>200</b>, the delivery module <b>218</b> can communicate directly with the devices <b>202</b>, <b>204</b>, and <b>206</b>, contact a pharmacy to order a specific medication for the patient, and/or contact <b>911</b> emergency response. In an alternative embodiment, the delivery module <b>218</b> and/or the patient may also establish a voice communication link between the patient and a caregiver, if warranted.
0096In addition to forms of reporting including visual and/or audible information, the advanced patient management system <b>200</b> can also communicate with and reconfigure one or more of the devices <b>202</b>, <b>204</b>, and <b>206</b>. For example, if device <b>202</b> is part of a cardiac rhythm management system, the host <b>212</b> and communicate with the device <b>202</b> and reconfigure the therapy provided by the cardiac rhythm management system based on the data collected from one or more of the devices <b>202</b>, <b>204</b>, and <b>206</b>. In another embodiment, the delivery module <b>218</b> can provide to the ITU <b>208</b> recorded data, an ideal range for the data, a conclusion based on the recorded data, and a recommended course of action. This information can be displayed on the ITU <b>208</b> for the patient to review.
0097The advanced patient management system <b>200</b> may also include one or more remote peripheral devices <b>209</b>. The remote peripheral device <b>209</b> may include, for example and without limitation, cellular telephones, pagers, PDA devices, facsimiles, remote computers, printers, video and/or audio devices, etc. The remote peripheral device <b>209</b> may communicate using landline or wireless technologies and may be used by the patient or caregiver to communicate with the communications system <b>210</b> and/or the host <b>212</b>. For example, the remote peripheral device <b>209</b> may be used by a caregiver to receive alerts from the host <b>212</b> based on data collected from the patient and to send instructions from the caregiver to either the patient or other clinical staff. In another example, the remote peripheral device <b>209</b> may be used by the patient to receive periodic or real time updates and alerts regarding the patient's health and well-being.
0098Referring now to <figref idref="DRAWINGS">FIG. 5</figref>, an illustrative hardware architecture for an interface device <b>99</b> will be described. As described briefly above with respect to <figref idref="DRAWINGS">FIG. 1A</figref>, the interface device <b>99</b> comprises a wireless communication device capable of communicating with a host computer <b>200</b> via a long range communications link <b>104</b> and of communicating with an IMD <b>100</b> via a short range communications link <b>103</b>. More particularly, according to the embodiment of the invention described herein, the interface device <b>99</b> comprises a digital wireless telephone modified for communication with the IMD <b>100</b> and for communicating with the host computer <b>200</b>.
0099In order to provide these functions, the interface device <b>99</b> comprises a command and control processor <b>516</b> for controlling the operation of the interface device <b>99</b>. As known to those skilled in the art, the command and control processor <b>516</b> may be embodied by any of a number of central processing unit devices. A memory <b>522</b> is used in conjunction with the command and control processor <b>516</b>. The memory <b>522</b> stores a number of application and data files utilized for communicating with the host computer <b>200</b> and the IMD <b>100</b>.
0100In particular, the memory <b>522</b> stores a phone application <b>524</b>. The phone application <b>524</b> controls the operation of the interface device <b>99</b> when the device is utilized as a conventional wireless telephone. In this manner, the interface device <b>99</b> may be utilized to send and receive calls in a conventional manner through the long range wireless communications link <b>104</b>. Aspects of the phone application <b>524</b> are well known to those skilled in the art.
0101The memory <b>522</b> also comprises an IMD interface application <b>526</b>. The IMD interface application <b>526</b> is a time-sliced software application that executes concurrently with the phone application <b>524</b>. As will be described in greater detail below with reference to <figref idref="DRAWINGS">FIG. 6</figref>, the IMD interface application <b>526</b> provides functionality for communicating with the IMD <b>100</b>, interrogating the IMD <b>100</b> for clinical data, and for transmitting the clinical data received from the IMD <b>100</b> to the host computer <b>200</b> via the long range communications link <b>104</b>. The IMD interface application <b>526</b> is described in detail below with reference to <figref idref="DRAWINGS">FIG. 6</figref>.
0102The memory <b>522</b> also includes IMD support files <b>528</b>. The IMD support files <b>528</b> describe communication protocols for communicating with different types of IMD <b>100</b> devices. In this manner, the interface device <b>99</b> may be programmed to communicate with previously released IMD devices <b>100</b> and IMDs <b>100</b> to be released in the future. The particular IMD support file to be utilized with a given IMD <b>100</b> may be selected through the keypad <b>504</b> and the display <b>502</b>, or through the use of an external programmer.
0103The memory <b>522</b> also stores an IMD serial number <b>530</b>. The IMD serial number <b>530</b> comprises a hardware serial number for the IMD <b>100</b>. The IMD serial number <b>530</b> may be utilized by the interface device <b>99</b> for gaining secure access to the memory contents of the IMD <b>100</b>. Moreover, by keying the IMD serial number <b>530</b> to a hardware serial number of the IMD <b>100</b>, a secure interface can be provided between the interface device <b>99</b> and the IMD <b>100</b>. Other interface devices <b>99</b> not having the proper serial number for gaining access to the IMD <b>100</b> would not be permitted to engage in any form of communication with the IMD <b>100</b>.
0104The memory <b>522</b> also stores IMD data <b>531</b>. IMD data <b>531</b> comprises data received from the IMD <b>100</b>. This data may include data regarding the characteristics of the patient's <b>102</b> body and data regarding the operation of the IMD <b>100</b>. As used herein, the term “clinical data” refers to both data describing the physical condition of the patient <b>102</b> and data describing the operation of the IMD <b>100</b>.
0105The hardware architecture of the illustrative interface device <b>99</b> also comprises a transmitter/receiver unit <b>520</b>. The transmitter/receiver unit <b>520</b>, or transceiver, comprises a frequency and protocol agile transmitter and receiver unit. The transceiver <b>520</b> is capable of configuring itself for communication with the IMD <b>100</b> via the short range communications link <b>102</b>. The transceiver <b>520</b> is also capable of configuring itself for communications with the host computer <b>200</b> via the long range communication link <b>104</b>. Moreover, in the embodiment of the invention described herein, the transceiver <b>520</b> is capable of configuring itself for voice communication with a wireless telephone network over the long range communications link <b>104</b>. It should be appreciated that the function of the transceiver <b>520</b> may be performed by other types of devices.
0106Configuration of the transceiver <b>520</b> is performed under control of the IMD interface application <b>526</b>. As will be described in greater detail below with respect to <figref idref="DRAWINGS">FIG. 6</figref>, the IMD interface application <b>526</b> may configure the transceiver <b>520</b> for communication with the IMD <b>100</b> on a predetermined schedule. Once the transceiver <b>520</b> has been configured for communication with the IMD <b>100</b>, the IMD interface application <b>526</b> may interrogate the IMD <b>100</b> for stored clinical data. The clinical data received from the IMD <b>100</b> may then be stored as IMD data <b>531</b> in the memory <b>522</b>. Once the clinical data has been received from the IMD <b>100</b>, the IMD interface application <b>526</b> may reconfigure the transceiver <b>520</b> for use via the long range communications link <b>104</b>.
0107The IMD interface application <b>526</b> is also operative to periodically determine whether IMD data <b>531</b> is stored in the memory <b>522</b> that has not been transmitted to the host computer <b>200</b>. If the IMD interface application <b>526</b> makes such a determination, the IMD interface application <b>526</b> is further operative to establish a connection between the interface device <b>99</b> and the host computer <b>200</b> over the long range communications link <b>104</b>. The IMD data <b>531</b> may then be transmitted from the interface device <b>99</b> to the host computer <b>200</b>. If the IMD data <b>531</b> is successfully transmitted to the host computer <b>200</b>, the IMD interface application <b>526</b> may remove the stored IMD data <b>531</b> from the memory <b>522</b>. A schedule may be coordinated between the interface device <b>99</b> and the host computer <b>200</b> for providing a predetermined time at which the IMD data <b>531</b> should be transmitted.
0108The interface device <b>99</b> also includes a baseband processor <b>514</b> for setting up the long range communications link <b>104</b>. As known to those skilled in the art, the baseband processor <b>514</b> is responsible for negotiating frequencies with the MTSO <b>110</b> and otherwise maintaining the communications link for voice and data communications over the long range communications link <b>104</b>.
0109The interface device <b>99</b> also includes a keypad <b>504</b> for providing input to the interface device <b>99</b> and a display <b>502</b> for generating output. The interface device <b>99</b> also includes a microphone <b>506</b> and a speaker <b>508</b> for use during voice calls over the long range communications link <b>104</b>. An analog-to-digital converter <b>510</b> and a digital-to-analog converter <b>512</b> are also provided as a part of the interface device <b>99</b> for converting spoken signals to digital data and for converting digital data to analog signals that may be played back on the speaker <b>508</b>, respectively. Other conventional components may be provided as part of the interface device <b>99</b> for enabling voice and digital data communication over the long range communication link <b>104</b>.
0110Referring now to <figref idref="DRAWINGS">FIG. 6</figref>, a state machine <b>600</b> will be described illustrating the operation of the interface device <b>99</b>. The state machine <b>600</b> begins in a home state <b>602</b>, where the interface device <b>99</b> operates as a digital wireless telephone. As mentioned above, according to the embodiment of the present invention described herein, the interface device <b>99</b> comprises a digital wireless telephone modified for communication with the IMD <b>100</b> and the host computer <b>200</b>. However, it should be appreciated by those skilled in the art that the interface device <b>99</b> may comprise other types of wireless digital devices such as two-way pagers and the like capable of communicating over a wireless communications network with a host computer <b>200</b>.
0111At the home state <b>602</b>, the interface device <b>99</b> is operative to send and receive wireless telephone calls over the long range telecommunications link <b>104</b>. The interface device <b>99</b> is also operative to provide other types of conventional features provided by a wireless digital telephone. While in the home state <b>602</b>, the interface device <b>99</b> is also operative to periodically interrogate the IMD <b>100</b> under control of the IMD interface application <b>526</b>. The interrogation of the IMD <b>100</b> by the interface device <b>99</b> may occur according to a predefined schedule coordinated with the IMD <b>100</b>, or other type of schedule set by a user. When the appointed time for interrogating the IMD <b>100</b> occurs, the state machine <b>600</b> transitions from state <b>602</b> to state <b>604</b>.
0112At state <b>604</b>, the IMD interface application <b>526</b> reconfigures the transceiver <b>520</b> for communication with the IMD <b>100</b> via the short range communication link <b>103</b>. As a result, the interface device <b>99</b> is incapable of communicating via the long range communications link <b>104</b> while the IMD <b>100</b> is being interrogated. According to another embodiment of the invention, two transceivers are provided, with one being dedicated to communicating with the IMD <b>100</b> and another dedicated to wireless digital communication via the long range communication link <b>104</b>. In this manner, communications over the long range communication link <b>104</b> may take place concurrently with the interrogation of the IMD <b>100</b>.
0113From state <b>604</b>, the state machine <b>600</b> transitions to state <b>606</b>, where the IMD <b>100</b> is unlocked. An authentication procedure may be utilized by the interface device <b>99</b> to unlock and communicate with the IMD <b>100</b> in a secure manner. For instance, the IMD serial number <b>530</b> may be communicated to the IMD <b>100</b> to authenticate the interface device <b>99</b> for communication. Once the IMD <b>100</b> has been unlocked, the state machine <b>600</b> transitions to state <b>608</b>.
0114At state <b>608</b>, the interface device <b>99</b> interrogates the IMD <b>100</b> for clinical data stored within the IMD <b>100</b>. The state machine <b>600</b> then transitions to state <b>610</b> where the clinical data received from the IMD <b>100</b> is stored within the memory <b>522</b> as IMD data <b>531</b>. If additional data remains to be received within the IMD <b>100</b>, the state machine <b>600</b> transitions back to state <b>608</b> where the interface device <b>99</b> continues to interrogate the IMD <b>100</b>. Once all the clinical data residing within the IMD <b>100</b> has been received by the interface device <b>99</b>, the state machine <b>600</b> transitions to state <b>612</b>.
0115At state <b>612</b>, the IMD <b>100</b> is locked in a secure manner by the interface device <b>99</b>. The state machine <b>600</b> then transitions to state <b>614</b>, where the transceiver <b>520</b> is reconfigured by the IMD interface application <b>526</b> for communication over the long range communications link <b>104</b>. In this manner, the interface device <b>99</b> is reconfigured for digital voice and data communications over the long range wireless link <b>104</b>. The state machine <b>600</b> then returns back to the home state <b>602</b> where normal wireless telephone operation is resumed.
0116From the home state <b>602</b>, the interface device <b>99</b> also periodically establishes a communications link with the host computer <b>200</b> for transmission of the clinical data received from the IMD <b>100</b>. The interface device <b>99</b> may transmit clinical data received from the IMD <b>100</b> to the host computer <b>200</b> immediately after receiving the information if the clinical data concerns a serious medical condition or a malfunction of the IMD <b>100</b>. Alternatively, if the clinical data received from the IMD <b>100</b> is routine status data that does not relate to a serious medical condition or a malfunction, the interface device <b>99</b> may transmit the clinical data to the host computer <b>200</b> based upon a predetermined schedule. The predetermined schedule may be based upon, among other things, the line charges for utilizing the long range communications link <b>104</b>. For instance, the interface device <b>99</b> may wait until off-peak hours when airtime rates are low to transmit the clinical data to the host computer <b>200</b>. Those skilled in the art should appreciate that the schedule for communication between the interface device <b>99</b> and the host computer <b>200</b> may also be based upon other types of factors.
0117If, at the home state <b>602</b>, the interface device <b>99</b> determines that the memory <b>522</b> contains IMD data <b>531</b> that must be transmitted to the host computer <b>200</b> immediately, the state machine <b>600</b> transitions to state <b>616</b>. At state <b>616</b>, the interface device <b>99</b> establishes a communications link with the host computer <b>200</b> via the long range communications link <b>104</b>. The state machine <b>600</b> then transitions from state <b>616</b> to state <b>620</b> where the stored IMD data <b>531</b> is transmitted to the host computer <b>200</b> via the long range communications link <b>104</b>. When the transmission has completed, the state machine <b>600</b> returns to the home state <b>602</b>.
0118In order for a scheduled transmission to be made from the interface device <b>99</b> to the host computer <b>200</b>, the state machine <b>600</b> transitions from state <b>602</b> to state <b>618</b>. At state <b>618</b>, the interface device <b>99</b> determines whether the current time is a scheduled time to transmit the IMD data <b>531</b> to the host computer <b>200</b>. If the current time is not a scheduled time to transmit the clinical data, the state machine <b>600</b> returns to the home state <b>602</b>. If, however, at state <b>618</b> the interface device <b>99</b> determines that the current time is a scheduled time to transmit, the state machine <b>600</b> transitions to state <b>616</b>. As described above, the interface device <b>99</b> establishes a communications link with the host computer at state <b>616</b>. The clinical data is then transmitted from the interface device <b>99</b> to the host computer <b>200</b> at state <b>620</b>. When the interface device <b>99</b> has completed the transmission of the clinical data, the state machine <b>600</b> returns to the home state <b>602</b>, where normal wireless telephone operation resumes.
0119Referring now to <figref idref="DRAWINGS">FIG. 7</figref>, an interface device <b>105</b> will be described according to another embodiment of the present invention. As described briefly above, in this embodiment of the present invention, the interface device <b>105</b> is operative to provide an interface between an IMD <b>100</b> and a host computer <b>200</b> through the use of a standard, unmodified wireless digital telephone <b>107</b>. In order to provide such an interface, the interface device <b>105</b> comprises a transmitter/receiver unit <b>704</b>, also called a transceiver, capable of establishing a short range communications link <b>103</b> with the IMD <b>100</b>. Through the short range communications link <b>103</b>, the interface device <b>105</b> can interrogate the IMD <b>100</b> and retrieve clinical data stored within the IMD <b>100</b>.
0120The transceiver <b>704</b> is operated under control of a central processing unit <b>702</b>. A memory <b>708</b> is also provided that stores a program and support files for enabling communication between the IMD <b>100</b> and the host computer <b>200</b>. In particular, the memory <b>708</b> stores an IMD/phone interface application <b>710</b>. The IMD/phone interface application <b>710</b> controls the operation of the interface device <b>105</b>. In particular, the IMD/phone interface application <b>710</b> controls communication with the IMD <b>100</b> and the wireless digital telephone <b>107</b>. Moreover, the IMD/phone interface application <b>710</b> controls the communication channel between the interface device <b>105</b> and the host computer <b>200</b>. Additional details regarding the operation of the IMD/phone interface application <b>710</b> are described below with respect to <figref idref="DRAWINGS">FIG. 8</figref>.
0121The memory <b>708</b> also stores IMD support files <b>528</b>, IMD serial number <b>530</b>, and IMD data <b>531</b>. As described above with respect to <figref idref="DRAWINGS">FIG. 5</figref>, the IMD support files <b>528</b> include data necessary to enable communications between any type of IMD <b>100</b> and the interface device <b>105</b>. The data contained within the IMD support files <b>528</b> includes data regarding the protocols and communication frequencies utilized by different IMDs <b>100</b>. The IMD serial number <b>530</b> may be used in an authentication procedure to gain secure access to the data stored within the IMD <b>100</b>. The IMD data <b>531</b> comprises data retrieved from the IMD <b>100</b> by the interface device <b>105</b>. The IMD data <b>531</b> is also referred to herein as clinical data.
0122The interface device <b>105</b> also comprises an input/output (“I/O”) interface <b>706</b>. The I/O interface <b>706</b> is connected to the central processing unit <b>702</b> and provides an interface to the wireless digital telephone <b>107</b> and a computer <b>200</b>A. The I/O interface <b>706</b> may provide an interface to the wireless digital telephone <b>107</b> through a connection <b>712</b>. The connection <b>712</b> may comprise a serial connection, a USB connection, or other type of connection utilized by wireless telephone manufacturers.
0123The I/O interface <b>706</b> also provides a connection <b>714</b> to a computer <b>200</b>A. The computer <b>200</b>A may comprise a standard personal computer operative to execute a programming application for configuring the interface device <b>105</b> for use with a particular IMD <b>100</b>. In particular, the computer <b>200</b>A may be utilized to select a particular IMD support file, to enter an IMD serial number <b>530</b>, and to otherwise configure the interface device <b>105</b>. The connection <b>714</b> between the I/O interface <b>706</b> and the computer <b>200</b>A may comprise a serial connection, a USB connection, a FIREWIRE connection, or other type of standard I/O connection known to those skilled in the art.
0124According to one actual embodiment of the present invention, the interface device <b>105</b> is mechanically attached to the wireless digital telephone <b>107</b>. The interface device <b>105</b> is configured in such a maimer that it is conformal to the wireless digital telephone <b>107</b>. In this manner, the interface device <b>105</b> may be attached to the wireless digital telephone <b>107</b> and electrically connected through the connection <b>712</b>. Moreover, the interface device <b>105</b> may be configured in a manner that allows the wireless digital telephone <b>107</b> to be placed in a standard charging cradle without modification. The interface device <b>105</b> may also be manufactured in a way that enables it to be semi-permanently attached to the wireless digital telephone <b>107</b> and mechanically rugged.
0125Referring now to <figref idref="DRAWINGS">FIG. 8</figref>, a state machine <b>800</b> will be described illustrating the operation of the interface device <b>105</b>. As described above, the interface device <b>105</b> is operated by the central processing unit <b>702</b> in conjunction with the IMD/phone interface application <b>710</b>. The IMD/phone interface application <b>710</b> begins operation in an idle state <b>802</b>. Periodically, the IMD/phone interface application <b>710</b> will establish a short range communications link <b>103</b> with the IMD <b>100</b> and interrogate the IMD <b>100</b>. The interrogation may occur at a time predetermined and scheduled between the interface device <b>105</b> and the IMD <b>100</b>. When the scheduled time for interrogation arrives, the state machine <b>800</b> transitions to state <b>804</b> where the interface device <b>105</b> unlocks the IMD <b>100</b>. As described above, an authentication procedure may be utilized to provide secure access to the IMD <b>100</b>. Accordingly to one embodiment of the present invention, the interface device <b>105</b> provides the IMD serial number <b>530</b> to the IMD <b>100</b> to authenticate itself. If the IMD <b>100</b> is successfully unlocked by the interface device <b>105</b>, the state machine <b>800</b> transitions to state <b>806</b>.
0126At state <b>806</b>, the interface device <b>105</b> interrogates the IMD <b>100</b> to retrieve the clinical data stored within the IMD <b>100</b>. In order to interrogate the IMD <b>100</b>, the transmitter/receiver unit <b>704</b> communicates with the IMD <b>100</b> via the short range communications link <b>103</b>. When data is received from the IMD <b>100</b>, the state machine <b>800</b> transitions to state <b>808</b>. At state <b>808</b> the clinical data received from the IMD <b>100</b> is stored in the memory <b>708</b>. If additional clinical data remains within the IMD <b>100</b> to be retrieved, the state machine returns to state <b>806</b>, where the interface device <b>105</b> continues to interrogate the IMD <b>100</b>. When all of the clinical data has been retrieved from the IMD <b>100</b>, the state machine <b>800</b> transitions to state <b>810</b> where the IMD <b>100</b> is locked. The state machine <b>800</b> then returns back to the idle state <b>802</b>.
0127From the idle state <b>802</b>, the IMD/phone interface application <b>702</b> periodically transmits IMD data <b>531</b> to the host computer <b>200</b> through the wireless digital telephone <b>107</b>. The time for transmission of the clinical data from the interface device <b>105</b> to the host computer <b>200</b> may be based on a schedule predetermined between the interface device <b>105</b> and the host computer <b>200</b> or based upon the type of clinical data to be delivered. For instance, clinical data relating to normally delivered status information and noncritical patient information may be delivered on a predetermined schedule. However, information relating to a critical failure of the IMD <b>100</b> or to a serious health condition encountered by the patient <b>102</b> may be delivered immediately after it is retrieved from the IMD <b>100</b>.
0128In order to transmit IMD data <b>531</b> from the interface device <b>105</b> to the host computer <b>200</b>, the state machine <b>800</b> transitions from the idle state <b>802</b> to state <b>812</b>. At state <b>812</b>, the interface device <b>105</b> determines through the I/O interface <b>706</b> whether the wireless digital telephone <b>107</b> is currently in use. If the wireless digital telephone <b>107</b> is currently in use, the state machine <b>800</b> returns to the idle state <b>802</b>. The interface device <b>105</b> may then wait a predetermined period of time before again attempting to transmit the IMD data <b>531</b>.
0129If, at state <b>812</b>, the interface device <b>105</b> determines that the wireless digital telephone <b>107</b> is not in use, the state machine transitions to state <b>814</b>. At state <b>814</b>, the interface device <b>105</b> initiates a connection with the host computer through the I/O interface <b>706</b>, the connection <b>712</b>, and the wireless digital telephone <b>107</b>. As described above, the wireless telephone <b>107</b> may utilize a long range wireless communications link <b>104</b> to establish communication with the host computer <b>200</b>. Once the communications channel has been established, the state machine <b>800</b> transitions to state <b>816</b>.
0130At state <b>816</b>, the clinical data stored within the interface device <b>105</b> is transmitted to the host computer <b>200</b>. Once the clinical data has been transmitted from the interface device <b>105</b> to the host computer <b>200</b>, the clinical data stored within interface <b>105</b> is deleted. The data delivered to the host computer <b>200</b> may also include a telephone number for the wireless digital telephone <b>107</b> so that the patient management system may contact a caregiver, emergency services, a physician, or the patient if the delivered data indicates a critical medical condition. From state <b>816</b>, the state machine <b>800</b> returns to the idle state <b>802</b>.
0131Based upon the foregoing, it should be appreciated that the present invention provides methods and apparatus for enabling communication between an IMD and a host computer. Although the invention has been described in language specific to computer structural features, methodological acts and by computer readable media, it is to be understood that the invention defined in the appended claims is not necessarily limited to the specific structures, acts or media described. Therefore, the specific structural features, acts and mediums are disclosed as exemplary embodiments implementing the claimed invention. Since many embodiments of the invention can be made without departing from the spirit and scope of the invention, the invention resides in the claims hereinafter appended.
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2 priority claims, no other members on record
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 32865302 | United States of America | A | |
| US20020328653 | – | – | – |
49 transactions on the USPTO file
Allowed after 2 non-final rejections, 2 final rejections and 1 RCE.
- Non-final rejections
- 2
- Final rejections
- 2
- RCEs
- 1
- Appeals
- 0
Over time
Point at a mark for the transactionTransactions
| Event | |
|---|---|
| Payment of Maintenance Fee, 12th Year, Large Entity | |
| Email Notification | |
| Change in Power of Attorney (May Include Associate POA) | |
| Correspondence Address Change | |
| Recordation of Patent Grant Mailed | |
| Patent Issue Date Used in PTA CalculationAllowed | |
| Issue Notification MailedAllowed | |
| Dispatch to FDC | |
| Application Is Considered Ready for Issue | |
| Issue Fee Payment Verified | |
| Issue Fee Payment Received | |
| Mail Notice of AllowanceAllowed | |
| Notice of Allowance Data Verification CompletedAllowed | |
| Date Forwarded to Examiner | |
| Response after Final Action | |
| Correspondence Address Change | |
| Mail Final Rejection (PTOL - 326)Final rejection | |
| Final RejectionFinal rejection | |
| Correspondence Address Change | |
| Date Forwarded to Examiner | |
| Response after Non-Final Action | |
| Correspondence Address Change | |
| Change in Power of Attorney (May Include Associate POA) | |
| Mail Non-Final RejectionNon-final rejection | |
| Non-Final RejectionNon-final rejection | |
| Date Forwarded to Examiner | |
| Date Forwarded to Examiner | |
| Disposal for a RCE / CPA / R129 | |
| Request for Continued Examination (RCE) | |
| Request for Extension of Time - Granted | |
| Workflow - Request for RCE - Begin | |
| Mail Final Rejection (PTOL - 326)Final rejection | |
| Final RejectionFinal rejection | |
| Date Forwarded to Examiner | |
| Response after Non-Final Action | |
| Mail Non-Final RejectionNon-final rejection | |
| Non-Final RejectionNon-final rejection | |
| IFW TSS Processing by Tech Center Complete | |
| Reference capture on IDS | |
| Case Docketed to Examiner in GAU | |
| Electronic Information Disclosure Statement | |
| Information Disclosure Statement (IDS) Filed | |
| Information Disclosure Statement (IDS) Filed | |
| Information Disclosure Statement (IDS) Filed | |
| Case Docketed to Examiner in GAU | |
| Application Dispatched from OIPE | |
| Application Is Now Complete | |
| IFW Scan & PACR Auto Security Review | |
| Initial Exam Team nn |
5 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Maintenance fee paymentMAFP | MAFP | |
| Fee paymentFPAY | FPAY | |
| Fee paymentFPAY | FPAY | |
| Information on status: patent grantGrantedPATENTED CASESTCF | STCF | |
| AssignmentAS | AS |
Numbers
- Publication
- 07127300
- Publication, DOCDB
- 7127300
- Publication, EPODOC
- US7127300
- Application
- 10328653
- Application, DOCDB
- 32865302
- Application, EPODOC
- US20020328653
Titles
- English
- Method and apparatus for enabling data communication between an implantable medical device and a patient management system
Patent term adjustment
- A delay
- +268 daysthe office missed an examination deadline
- Applicant delay
- −74 days
- Net adjustment
- 194 days
Classification
- CPC, 9
- A61N1/37235
- G16H40/67
- H04W76/14
- H04W4/80
- A61B5/0022
- H04B1/40
- H04M1/72412
- A61B5/002
- H04B1/385
- IPC, 3
- A61B1 20
- A61N1 08
- H04M1 72412
- USPC, 1
- 607060000